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"Seong-Hae Jeong"

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Experimental study | Trauma

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Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2021;8(3):216-228.   Published online September 30, 2021
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Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2021;8(3):216-228.   Published online September 30, 2021
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Objective
Hypoxic ischemia (HI) is a secondary insult that can cause fatal neurologic outcomes after traumatic brain injury (TBI), ranging from mild cognitive deficits to persistent vegetative states. We here aimed to unravel the underlying pathological mechanisms of HI injury in a TBI mouse model.
Methods
Neurobehavior, neuroinflammation, and oxidative stress were assessed in a mouse model of controlled cortical impact (CCI) injury followed by HI. Mice underwent CCI alone, CCI followed by HI, HI alone, or sham operation. HI was induced by one-vessel carotid ligation with 1 hour of 8% oxygen in nitrogen. Learning and memory were assessed using the novel object recognition test, contextual and cued fear conditioning, and Barnes maze test. Brain cytokine production and oxidative stress-related components were measured.
Results
Compared to TBI-only animals, TBI followed by HI mice exhibited significantly poorer survival and health scores, spatial learning and memory in the Barnes maze test, discrimination memory in the novel object recognition test, and fear memory following contextual and cued fear conditioning. Malondialdehyde levels were significantly lower, whereas glutathione peroxidase activity was significantly higher in TBI followed by HI mice compared to TBI-only and sham counterparts, respectively. Interleukin-6 levels were significantly higher in TBI followed by HI mice compared to both TBI-only and sham animals.
Conclusion
Post-traumatic HI aggravated deficits in spatial, fear, and discrimination memory in an experimental TBI mouse model. Our results suggest that increased neuroinflammation and oxidative stress contribute to HI-induced neurobehavioral impairments after TBI.

Citations

Citations to this article as recorded by  Crossref logo
  • The immunological landscape of traumatic brain injury: insights from pathophysiology to experimental models
    Matthew Abikenari, Joseph H. Ha, Justin Liu, Alexander Ren, Kwang Bog Cho, Jaejoon Lim, Lily H. Kim, Ravi Medikonda, John Choi, Michael Lim
    Frontiers in Neurology.2025;[Epub]     CrossRef
  • The long-term influences of age at injury on neuroinflammation and neuronal apoptosis following traumatic brain injury in pediatric and adult mice
    Jin-Soo Park, Hyun-Jeong Park, Young-Min Kim, Hyun-Seok Chai, Gwan Jin Park, Sang-Chul Kim, Gyeong-Gyu Yu, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2025; 12(3): 267.     CrossRef
  • Chronic juvenile stress exacerbates neurobehavioral dysfunction and neuroinflammation following traumatic brain injury in adult mice
    Sung-Jin Park, Hyun-Jeong Park, Backyoun Kim, Young-Min Kim, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2023; 10(2): 200.     CrossRef
  • 9,251 View
  • 80 Download
  • 4 Web of Science
  • 3 Crossref

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Exploratory, cognitive, and depressive-like behaviors in adult and pediatric mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2019;6(2):125-137.   Published online June 28, 2019
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Exploratory, cognitive, and depressive-like behaviors in adult and pediatric mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2019;6(2):125-137.   Published online June 28, 2019
Close
Objective
Sequelae of behavioral impairments associated with human traumatic brain injury (TBI) include neurobehavioral problems. We compared exploratory, cognitive, and depressive-like behaviors in pediatric and adult male mice exposed to controlled cortical impact (CCI).
Methods
Pediatric (21 to 25 days old) and adult (8 to 12 weeks old) male C57Bl/6 mice underwent CCI at a 2-mm depth of deflection. Hematoxylin and eosin staining was performed 3 to 7 days after recovery from CCI, and injury volume was analyzed using ImageJ. Neurobehavioral characterization after CCI was performed using the Barnes maze test (BMT), passive avoidance test, open-field test, light/dark test, tail suspension test, and rotarod test. Acutely and subacutely (3 and 7 days after CCI, respectively), CCI mice showed graded injury compared to sham mice for all analyzed deflection depths.
Results
Time-dependent differences in injury volume were noted between 3 and 7 days following 2-mm TBI in adult mice. In the BMT, 2-mm TBI adults showed spatial memory deficits compared to sham adults (P<0.05). However, no difference in spatial learning and memory was found between sham and 2-mm CCI groups among pediatric mice. The open-field test, light/dark test, and tail suspension test did not reveal differences in anxiety-like behaviors in both age groups.
Conclusion
Our findings revealed a graded injury response in both age groups. The BMT was an efficient cognitive test for assessing spatial/non-spatial learning following CCI in adult mice; however, spatial learning impairments in pediatric mice could not be assessed.

Citations

Citations to this article as recorded by  Crossref logo
  • Mild pediatric traumatic brain injury has sex-specific effects on neuroimmune cells and social behavior in rats
    Michaela R. Breach, Brooke Schatz, Habib E. Akouri, Zoe M. Tapp, Alejandra Zaleta Lastra, Alexander E. Weinstein, Minna Mohamed, Ashley E. Walters, Reem Mohamed, Olimjon Toirov, Marissa A. Smail, Cole Vonder Haar, Olga N. Kokiko-Cochran, Kathryn M. Lenz
    Scientific Reports.2026;[Epub]     CrossRef
  • Home-cage monitoring as a sensitive tool for detecting subtle behavioral alterations following mild traumatic brain injury
    Bar Richmond-Hacham, Chaim G. Pick, Lior Bikovski
    Experimental Neurology.2026; 405: 115929.     CrossRef
  • The long-term influences of age at injury on neuroinflammation and neuronal apoptosis following traumatic brain injury in pediatric and adult mice
    Jin-Soo Park, Hyun-Jeong Park, Young-Min Kim, Hyun-Seok Chai, Gwan Jin Park, Sang-Chul Kim, Gyeong-Gyu Yu, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2025; 12(3): 267.     CrossRef
  • Multiplexed Quantitative Proteomics Reveals Proteomic Alterations in Two Rodent Traumatic Brain Injury Models
    Junho Park, Seung Hak Lee, Dongyoon Shin, Yeongshin Kim, Young Sik Kim, Min Yong Seong, Jin Joo Lee, Han Gil Seo, Won-Sang Cho, Young Sun Ro, Youngsoo Kim, Byung-Mo Oh
    Journal of Proteome Research.2024; 23(1): 249.     CrossRef
  • KCNJ2 inhibition mitigates mechanical injury in a human brain organoid model of traumatic brain injury
    Jesse D. Lai, Joshua E. Berlind, Gabriella Fricklas, Cecilia Lie, Jean-Paul Urenda, Kelsey Lam, Naomi Sta Maria, Russell Jacobs, Violeta Yu, Zhen Zhao, Justin K. Ichida
    Cell Stem Cell.2024; 31(4): 519.     CrossRef
  • Neurobiochemical, Peptidomic, and Bioinformatic Approaches to Characterize Tauopathy Peptidome Biomarker Candidates in Experimental Mouse Model of Traumatic Brain Injury
    Hamad Yadikar, Connor Johnson, Niko Pafundi, Lynn Nguyen, Milin Kurup, Isabel Torres, Albandery Al-Enezy, Zhihui Yang, Richard Yost, Firas H. Kobeissy, Kevin K. W. Wang
    Molecular Neurobiology.2023; 60(4): 2295.     CrossRef
  • Chronic juvenile stress exacerbates neurobehavioral dysfunction and neuroinflammation following traumatic brain injury in adult mice
    Sung-Jin Park, Hyun-Jeong Park, Backyoun Kim, Young-Min Kim, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2023; 10(2): 200.     CrossRef
  • The pros and cons of motor, memory, and emotion-related behavioral tests in the mouse traumatic brain injury model
    Ruoyu Zhang, Junming Wang, Leo Huang, Tom J. Wang, Yinrou Huang, Zefu Li, Jinxin He, Chen Sun, Jing Wang, Xuemei Chen, Jian Wang
    Neurological Research.2022; 44(1): 65.     CrossRef
  • Comparison of young male mice of two different strains (C57BL/6J and the hybrid B6129SF1/J) in selected behavior tests: a small scale study
    Kristine Eraker Aasland Hansen, Alexandra M. Hudecová, Fred Haugen, Eystein Skjerve, Erik Ropstad, Karin E. Zimmer
    Laboratory Animal Research.2022;[Epub]     CrossRef
  • The inhibition of mammalian target of rapamycin (mTOR) in improving inflammatory response after traumatic brain injury
    Michela Campolo, Giovanna Casili, Marika Lanza, Alessia Filippone, Marika Cordaro, Alessio Ardizzone, Sarah Adriana Scuderi, Salvatore Cuzzocrea, Emanuela Esposito, Irene Paterniti
    Journal of Cellular and Molecular Medicine.2021; 25(16): 7855.     CrossRef
  • Traumatic Brain Injury: An Age-Dependent View of Post-Traumatic Neuroinflammation and Its Treatment
    Clément Delage, Toufik Taib, Célia Mamma, Dominique Lerouet, Valérie C. Besson
    Pharmaceutics.2021; 13(10): 1624.     CrossRef
  • Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
    Se-Kwang Oh, Hyun-Jeong Park, Gyeong-Gyu Yu, Seong-Hae Jeong, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2021; 8(3): 216.     CrossRef
  • Measuring Anxiety-Like Behaviors in Rodent Models of Traumatic Brain Injury
    Laura B. Tucker, Joseph T. McCabe
    Frontiers in Behavioral Neuroscience.2021;[Epub]     CrossRef
  • Changes in macrophage inflammatory protein-1 (MIP-1) family members expression induced by traumatic brain injury in mice
    Agata Ciechanowska, Katarzyna Popiolek-Barczyk, Katarzyna Pawlik, Katarzyna Ciapała, Marco Oggioni, Domenico Mercurio, Maria-Grazia De Simoni, Joanna Mika
    Immunobiology.2020; 225(3): 151911.     CrossRef
  • Modeling Controlled Cortical Impact Injury in 3D Brain‐Like Tissue Cultures
    Volha Liaudanskaya, Joon Yong Chung, Craig Mizzoni, Nicolas Rouleau, Alexander N. Berk, Limin Wu, Julia A. Turner, Irene Georgakoudi, Michael J. Whalen, Thomas J. F. Nieland, David L. Kaplan
    Advanced Healthcare Materials.2020;[Epub]     CrossRef
  • CREB Coactivator CRTC2 Plays a Crucial Role in Endothelial Function
    Hideaki Kanki, Tsutomu Sasaki, Shigenobu Matsumura, Tomohiro Kawano, Kenichi Todo, Shuhei Okazaki, Kumiko Nishiyama, Hiroshi Takemori, Hideki Mochizuki
    The Journal of Neuroscience.2020; 40(49): 9533.     CrossRef
  • 14,289 View
  • 203 Download
  • 17 Web of Science
  • 16 Crossref